Biomedical subjects
M R El-Gewely
Publications and source records attributed to M R El-Gewely.
In vivo interaction between mutated tryptophan repressors of Escherichia coli.
By expressing a mutant trpR gene in an Escherichia coli strain that is trpR and has beta-galactosidase activity fused to the trp promoter/operator, thus putting the beta-galactosidase activity under the control of the Trp repressor, we can determine quantitatively the relative repression activity of such mutant(s). We used this technique to analyse the biological consequences of substituting certain amino acid residues in only one of the two corepressor binding pockets. By combining two compatible plasmids in this strain, one expressing the mutant T44M and the other expressing only one substitution at a time at position 85, we analysed the repression activity of the resulting interactions in vivo. This approach allowed us to engineer active dimer repressors made of two inactive or partially active monomers. Amino acid substitutions at position 85 with a positive or with an indole ring (W) appeared to complement T44M, which amino acids with a negative charge did not. Only L substitution at position 85 appeared to restore activity among the hydrophobic amino acids tested. Similar to the wild-type repressor activity, the successful mutant-mutant interactions were L-tryptophan dependent. In vivo regulation by three known L-tryptophan analogues demonstrated the same trend of regulation among the wild-type repressors and the active mutant-mutant combinations.
Isolation of cmr, a novel Escherichia coli chloramphenicol resistance gene encoding a putative efflux pump.
A novel gene designated cmr, which mapped to 18.8 min of the Escherichia coli K-12 genome, was shown to mediate resistance to chloramphenicol when it was expressed from a multicopy vector. The accumulation of chloramphenicol was significantly less in cells overexpressing cmr than in control cells harboring the vector without insert. After the addition of a proton motive force blocker, the level of accumulation of chloramphenicol in the resistant cells rapidly approached the levels found in sensitive cells carrying only the chromosomal cmr. Northern (RNA) blot analyses revealed that the cmr gene is expressed as a 1.3-kb transcript. This size corresponds very well with a predicted size of 1,293 nucleotides (nt) based on the mapping of the transcription initiation site to a G residue 24 nt upstream of the start codon and the presence of a putative rho-independent terminator sequence ending 36 nt downstream of the 1,233-nt open reading frame encoding the putative Cmr protein. The 411-residue-long derived amino acid sequence contains 12 putative transmembrane segments and displays significant sequence similarities to several known drug resistance protein sequences of the major facilitator family. We provide evidence strongly suggesting that the resistance mediated by Cmr involves active exclusion of chloramphenicol.
Sequence and evolution of the regions between thr rrn operons in the chloroplast genome of Euglena gracilis bacillaris.
The rRNA genes are arranged in three sequential operons preceded by a fourth partial operon. Part or all of a 1462 nucleotide sequence extending from within the 3'-end of the 23S rRNA gene, across the 5S rRNA gene and a presumptive transcription terminator, to within the first structural gene (for 16S rRNA) of the rrn operon was determined for each region between operons. Homologies of the 3'-end of the 23S rRNA gene with the 4.5S rRNA genes of higher plant chloroplasts, and of the 5S rRNA gene with other 5S rRNA genes were examined. The region preceding the 16S rRNA gene, which is expected to contain sites for initiation and regulation of rrn transcription, includes a 305 base-pair sequence with substantial homology with structural genes elsewhere in the chloroplast genome. The homologies suggest that this portion of the leader evolved from copies of parts of the structural genes which had been inserted before the 16S rRNA genes. Thus the chloroplast rrn leader may provide a unique opportunity to study how a regulatory sequence evolved from well-defined structural genes.
Location of a phenylalanine tRNA gene on the physical map of the Euglena gracilis chloroplast genome.
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Cloning of mouse beta-casein gene sequences.
Casein messenger RNAs (mRNAcsn) were purified from lactating mammary glands of BALB/c mice and used as a starting material for cloning of casein gene sequences. Double-stranded casein cDNA (ds-cDNAcsn) was prepared and blunt-end ligated to HindIII-specific DNA linker molecules. After digestion with HindIII, the dsDNAcsn was inserted into the HindIII site of plasmid pBR322, using T4 DNA ligase. Escherichia coli strain RH202 was transformed with the hybrid plasmids, and transformants were selected for resistance to ampicillin. Electrophoresis of HindIII-digested hybrid plasmid DNAs, followed by Southern transfer and hybridization to [32P]cDNAcsn, revealed that one of the hybrid-plasmid-containing colonies, designated pCas51, contained a 400-bp insert which hybridized to the [32P]cDNAcsn. Purification of the individual casein mRNAs (mRNAcsn alpha, beta, and gamma) and solution hybridization of nick-translated insert DNA to each of these revealed that pCas51 contained sequences complementary primarily to mRNAcsn beta.
Preparative separation of DNA--ethidium bromide complexes by zonal density gradient centrifugation.
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Cloning of sea urchin actin gene sequences for use in studying the regulation of actin gene transcription.
In order to investigate the regulation of actin gene transcription during early sea urchin development, a specific hybridization probe for actin sequences is required. Such a probe was produced by cloning cDNA transcribed from a sea urchin poly(A)-containing mRNA preparation enriched for actin message. Double-stranded DNA was ligated into the BamHI restriction site of plasmid pBR322, and the resulting hybrid molecules were used to transform the Escherichia coli strain ML100. After preliminary screening of bacterial colonies by antibiotic sensitivity and hybridization back to the original cDNA, clones containing sea urchin DNA were further characterized by a positive translation assay in which total sea urchin mRNA was hybridized to plasmid, and the hybridized message then was eluted and translated in a reticulocyte cell-free protein-synthesizing system. In this way, one clone (pSA38) was found to hybridize selectively to sea urchin mRNA coding for a protein of 43,000 daltons. This protein was identified as actin by three criteria: electrophoretic migration in two-dimensional polyacrylamide gels, affinity for DNase I, and peptide mapping. Restriction endonuclease and heteroduplex mapping of pSA38 indicate that it contains a 1.5-kilobase-pair insert and is therefore likely to contain a large portion of the actin coding sequence. By using pSA38 as a hybridization probe, it has been found that the level of actin-specific RNA sequences increases dramatically during early sea urchin development.